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Designed for ML services
Many ML projects are implemented with Jupyter notebooks. It is really hard to scale and maintain such solutions when deployed to production. We recommend investing in MLOps early. Develop your ML solution with Skipper to be ready for production deployment.
Data processing - Data is processed in a separate container, this makes it easier to apply future changes.
Prediction service scaling - Prediction service is configured to run in separate Kubernetes Pod for better scalability.
Meet the team
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Florin Marcus florinmarcusML Engineer
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Andrej Baranovskij abaranovskis-redsamuraiFounder and ML Engineer
Featured work
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katanaml/katana-skipper
Simple and flexible ML workflow engine
Python 414